Nagasaki S (1968) Cytological and physiological studies on phosphatases in developing cultures of
Aspergillus niger. J Gen Appl Microbiol 14:262–273
Nilsen P, Borja I, Knutsen H, Brean R (1998) Nitrogen and drought effects on ectomycorrhizae of
Norway spruce [Picea abies L.(Karst.)]. Plant and Soil 198:179–184
Oba Y, Nagatsuka K (1988) Pedology and soil taxonomy. Yonkedo, Tokyo, p 338. (in Japanese)
Obase K, Diygab GW, Matsuda Y, Smith ME (2016) Cladophialophora floridana and
Cladophialophora toruosa, new species isolated from sclerotia of Cenococcum geophilum in
forest soils of Florida, USA. Mycoscience 57:26–34
Oguma K, Tamura K, Kamijo T, Kawada K, Jamsran U (2015) Characteristics of Soils under the
Forest Steppe in Mongolia. J Arid Land Stud 25(3):145–148
Phosri C, Polme S, Taylor AFS, Koljalg U, Suwannasai N, Terdersoo L (2012) Diversity and
community composition of ectomycorrhizal fungi in a dry deciduous dipterocarp forest in
Thailand. Biodivers Conserv 21:2287–2298
Preetha B, Viruthagiri T (2005) Biosortion of zinc (II) by Rhizopus arrhizus: equilibrium and
kinetic modeling. Afr J Biotech 4(6):506–508
Ross SM (1994) Retention, transformation and mobility of toxic metals in soils. In: Ross SM
(ed) Toxic metals in soil-plant systems. John Wiley and Sons, New York, NY, pp 63–152
Sakagami N (2009) Analysis on formation factor of sclerotia of Cenococcum geophilum in Picea
abies forest, Harz Mts, Germany. Assoc Jpn Geogr 82(2):184–195
Sithole S, Mugivhisa L, Amoo S, Olowoyo J (2017) Pattern and concentrations of trace metals in
mushrooms harvested from trace metal-polluted soils in Pretoria, South Africa. S Afr J Bot
108:315–320
Stokes PM, Lindsay SE (1979) Copper tolerance and accumulation in Penicillium ochro-chloron
isolated from copper-plating solution. Mycologia 71:788–806
Tang Y, Shi L, Zhong K, Shen Z, Chen Y (2018) Ectomycorrhizal fungi may not act as a barrier
inhibiting host plant absorption of heavy metals. Chemosphere 215:115–123
Trappe JM. (1964) Mycorrhizal host and distribution of Cenococcum graniforme. Lloydia
27:100–106
Trappe JM (1969) Studies on Cenococcum grainforme. I. An efficient method for isolation from
sclerotia. Can J Bot 47:1389–1390
Trappe JM (1988) Lessons from alpine fungi. Mycologia 80:1–10
Tsekova K, Galabova D, Todorova K, Ilieva S (2002) Phosphatase activity and copper uptake
during growth of Aspergillus niger. Process Biochem 37:753–758
Vinichuk M (2013) Copper, zinc, and cadmium in various fractions of soil and fungi in Swedish
forest. J Environ Sci Heal A 48(8):980–987
Vogt KA, Edmonds RL (1980) Patterns of nutrient concentration in basidiocarps in western
Washington. Can J Bot 58:694–698
Vogt KA, Edmonds RL, Grier CC (1981) Biomass and nutrient concentrations of sporocarps
produced by mycorrhizal and decomposer fungi in Abies amabilis stands. Oecologia
50:170–175
Watanabe M, Kado T, Ohta H, Fujitake N (2002) Distribution and development of sclerotium grain
as influenced by aluminum status in volcanic ash soils. Soil Sci Plant Nutr 48:569–575
Watanabe M, Ohishi S, Pott A, Hardenbicker U, Aoki K, Sakagami N, Ohta H, Fujitake N (2004)
Soil chemical properties and distribution of sclerotium grains in forest soils, Harz Mts.,
Germany. Soil Sci Plant Nutr 50(6):863–870
Wen Z, Shi L, Tang Y, Shen S, Xia Y, Chen Y (2016) Effects of Pisolithus tinctorius and
Cenococcum geophilum inoculation on pine in copper-contaminated soil to enhance
phytoremediation. Int J Phytorem 19(4):387–394
Wilson RW (1972) Acid and alkaline phosphatases in Schizophyllum commune. Can J Microbiol
18:694–695
Yoshida H, Oikawa S, Ikeda M, Reese E (1988) A novel acid phosphatase excreted by Penicillium
funiculosum that hydrolyzes both phosphodiesters and phosphomonoesters with aryl leaving
groups. J Biochem 18:794–798
208
K. Nyamsanjaa et al.
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